Calculus

I need help with the integration of this dy/dx = x - 2y/x
i tried to take help from ai but this is what ir proved 💀
The correct answer is (3) (-1,2).

Given the slope of the tangent at any point (x, y) on the curve as (x²-2y)÷x, we can write the differential equation:

dy/dx = (x²-2y)/x

We are also given that the curve passes through the point (1, -2). We can use this information to find the equation of the curve.

Separating the variables, we get:

∫dy = ∫(x²-2y)/x dx

Integrating both sides, we get:

y = (1/3)x³ - 2x + C

Using the point (1, -2), we can find the value of C:

-2 = (1/3)(1)³ - 2(1) + C
C = -4/3

So, the equation of the curve is:

y = (1/3)x³ - 2x - 4/3

Now, we can check if the curve passes through the point (-1, 2):

2 = (1/3)(-1)³ - 2(-1) - 4/3
2 = -1/3 + 2 - 4/3
2 = 2/3 (which is true)

Therefore, the curve also passes through the point (-1, 2).

ok thanks

what do you need help with

Take y/x = v and solve it. This is one of the most basic questions in differential equations.

Your post is a bit unclear.

You have the equation dy/dx = x - 2y/x.

Is the goal to find y(x)? Were you given any initial conditions?

i see yeah i got the question now

my explanation should still stand just plug in choices (brute force since its multiple choice) and you get the correct one

how can i

Fuck, this feels old, been 5 years

You preparing for JEE?

Good luck! I am an IITian, always here if u need any help

give up on JEE ima beat u anyway

Imagine thinking math is real

1-2y/x leke kar
1 constant me chala jayega aur fir u/v laga de